See how a biosourced binder using hydrogenated sugars, citric acid, and high-MW polysaccharides
See how a polyvinyl alcohol and starch binder system consolidates textile fabrics with mechanic
See how a composite polymer-saccharide binder system improves transverse tear strength and ther
See how a water-activatable adhesive coating enables textile wallcoverings to bond securely, th
See how a composite binder system combining natural starch with polyvinyl alcohol improves text
See how a starch-dominant binder with polyvinyl alcohol improves wet strength and color stabili
A starch-polymer binder strengthens roofing base interlinings while improving heat dimensional stability, flexibility, ageing, and cost.
A polymer-saccharide aqueous binder boosts transverse tear strength and limits high-temperature elongation in fibrous or granular moldings.
Hydrogenated saccharides lower binder viscosity for mineral wool spraying, improving fiber distribution and reducing added water and heat treatment.
Fine glass fibers with a PVA-CMC binder balance density, R-value, and handling strength in fiberglass insulation.
Optimized glass fiber diameter and binder content balance handling, density, and R-value in fiberglass insulation for building use.
A sugar-syrup mineral fibre binder replaces costly anhydrides to improve curing speed, durability, and humidity resistance.
Nanocrystalline cellulose reinforces starch adhesive to limit substrate deposition, improve bonding, and prevent glue-stick breakage.
A one-component sugar–silane binder crosslinks wood particles without formaldehyde, isocyanates, or synthetic polymers.
Amino phenolic resins stabilize aqueous binders at low pH, maintaining mechanical strength under humidity without increasing binder proportions.
Aqueous binder composition for mineral wool insulation using hydrogenated sugars, polycarboxylic acid, and isosorbide to form a thermoset polyester network.
Oxidized dextrin binders replace formaldehyde resins while maintaining hot wet tensile strength.
Replacing phenol formaldehyde resins with a starch based composite eliminates formaldehyde emission while maintaining mechanical strength.
A water-based adhesive composition uses starch, glycerol, and fatty acids to form strong bonds without organic solvents.
Ionic esterifying agents modify oxidized starch granules to resolve anticoagulation and storage stability limitations in corrugated box adhesives.
Replacing toxic borax with polyphosphates and hydrocolloids maintains adhesive performance while eliminating regulatory compliance barriers.
Replacing petroleum resins with reducing sugars and polysaccharides minimizes volatile emissions while maintaining tensile strength.
Enzymatically treated highly branched starch paired with carboxymethylated polysaccharides delivers stable viscosity and high wet tack for industrial bonding.
Replacing phenolic resins, this sizing uses polysaccharides and polycarboxylic acids to crosslink fibers without generating harmful formaldehyde emissions.
Replacing synthetic polymers with natural rubber latex and carbohydrate adhesive maintains sealing performance while eliminating harmful environmental factors.
Fatty acid salt additives modify glue stick adhesive composition to enhance sliding behavior and application efficiency.
Ternary binder system using specific urea and sugar ratios to prevent punking and improve fire resistance while reducing production costs.
A water-activated adhesive mixture bonds insulation products using a re-wettable coating formulation.
A formaldehyde-free binder system uses polyol and melamine to create stable composite materials.
Replacing formaldehyde-based resins with pea starch and isocyanates reduces vapor emissions below 0.1 ppm during hot pressing.
Glycidyl ether crosslinkers enable tannin and starch resins to cure rapidly without formaldehyde emissions.
A pea and potato starch combination replaces boron additives in corrugated cardboard adhesives.
Amino sugar binder composition cures mineral fibres at lower temperatures while eliminating formaldehyde emissions from fossil fuel derived materials.
Adjusting starch adhesive pH to 7.5-9.5 enables bonding to low-Cobb paper without compromising structural integrity.
Recirculating starch paste prevents premature discharge and product loss while ensuring complete enzyme inactivation.
A curable resin dispersion combines native starch with low molecular weight polycarboxylic compounds and polyols to bind mineral fibers.
A modulating coating combines barrier and hygroscopic substances to regulate volatile composition release from scent reservoirs.
A formaldehyde-free binder composition uses water-insoluble native starch and acrylic components to provide enhanced binding strength.
Cold water soluble starch combined with plasticiser modifies viscosity and flow characteristics in coating compositions.
Polyvinyl acetate and starch binder consolidates textile fabrics, eliminating blistering from gas generation while meeting environmental regulations.
Covalently cross-linked starch replaces toxic borax to eliminate pH-dependent reversible cross-linking while maintaining high adhesive strength.
Oil-in-water emulsions with large mineral oil droplets migrate to binder surfaces during thermal hardening.
Composite starch adhesive with maltodextrin and hydroxypropyl derivatives achieves high solids content and strong adhesion to polyethylene.
Acid hydrolysis reduces starch molecular weight to lower viscosity while maintaining high dry solids content for paper coating.
Glucose syrup and sulfamic acid replace formaldehyde resins, reducing emissions while maintaining mechanical strength.
Replacing formaldehyde resins with reducing sugars and metal salts eliminates harmful emissions while maintaining fiber binding strength.
Native starch combined with polycarboxylic polymer reduces viscosity for better binder distribution in mineral wool.
A starch-based adhesive system joins wood materials using amine or amide polymers to create strong bonds.
A pseudo-plastic adhesive composition adjusts viscosity under shear forces to enable uniform application on corrugated board surfaces.